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Optimized Aggregate Gradatyion for Bridge Deck Concrete

Optimized Aggregate Gradatyion for Bridge Deck Concrete PDF Author: Dola K. Erla
Publisher:
ISBN:
Category : Bridges
Languages : en
Pages : 138

Book Description


Optimized Aggregate Gradatyion for Bridge Deck Concrete

Optimized Aggregate Gradatyion for Bridge Deck Concrete PDF Author: Dola K. Erla
Publisher:
ISBN:
Category : Bridges
Languages : en
Pages : 138

Book Description


Optimized Aggregate Gradation for Bridge Deck Concrete with Quartzite Aggregate

Optimized Aggregate Gradation for Bridge Deck Concrete with Quartzite Aggregate PDF Author: Sudharma Toyyeti
Publisher:
ISBN:
Category : Bridges
Languages : en
Pages :

Book Description


Optimized Aggregate Gradation for Bridge Deck Concrete with Limestone Aggregate

Optimized Aggregate Gradation for Bridge Deck Concrete with Limestone Aggregate PDF Author: Manoj Kotni Kumar
Publisher:
ISBN:
Category : Bridges
Languages : en
Pages :

Book Description


Optimized Aggregate Gradation for Bridge Deck Concrete with Granite Aggregate

Optimized Aggregate Gradation for Bridge Deck Concrete with Granite Aggregate PDF Author: Raghunandan V. Kadaba
Publisher:
ISBN:
Category : Bridges
Languages : en
Pages :

Book Description


Performance of Bridge Decks Made from Concrete with Optimized Aggregate Gradation

Performance of Bridge Decks Made from Concrete with Optimized Aggregate Gradation PDF Author: Jagan Mohan Rao V. V. Kanaparthi
Publisher:
ISBN:
Category :
Languages : en
Pages :

Book Description
This thesis summarizes the results of an experimental investigation on the performance evaluation of bridge deck concrete made with optimized aggregate gradation. The research conducted was part of the project sponsored by South Dakota Department of Transportation. The primary objective of the projects is to validate the research findings of the laboratory concrete against the performance of field concrete that used optimized aggregate gradation. The performance of field concrete used in three newly constructed bridge decks was evaluated by conducting a series of laboratory tests to determine compressive strength, modulus of elasticity, drying shrinkage resistance, alkali aggregate reactivity, sulfate attack, freeze-thaw durability, and rapid chloride permeability. This also includes measuring and documenting of the extent of cracks developed in the new bridge decks, and comparing with that of other similar existing bridges in the state. The study revealed that field concrete had good workability and finishability. The fresh concrete and micro-structural properties of the field concrete are similar to that of control concrete and the optimum laboratory concrete. The average compressive strength of the field concrete was higher that of control concrete and optimum laboratory concrete. The field concrete showed better resistance to sulfate attack, chloride permeability, drying shrinkage, alkali aggregate reactivity, and freeze-thaw exposure than control concrete and optimum laboratory concrete. The total number of cracks and the corresponding crack areas in the new bridge decks were significantly smaller than those of bridge decks made from A-45 concrete. It is recommended that the optimized aggregate gradation mixture proportions of Class F fly ash (20% cement replacement by weight) be specified for bridge deck concrete. Crack surveys need to be carried out on the new bridges annually for next three years to monitor any potential deterioration.

Evaluation of Internally Cured Bridge Deck Concrete with Standard and Optimized Aggregate Gradation

Evaluation of Internally Cured Bridge Deck Concrete with Standard and Optimized Aggregate Gradation PDF Author: Arman Abdigaliyev
Publisher:
ISBN:
Category : Bridges
Languages : en
Pages : 117

Book Description
Due to the relatively high cement content and low water-to-cement ratio (w/c) used, bridge deck concrete is prone to premature cracking. Internal curing has been found to greatly reduce the chance of premature cracking as well as concrete deterioration. This research developed internally cured bridge deck concrete based on a local mix design in Nebraska. Four different lightweight fine aggregate (LWFA) as internal curing agents were evaluated and their effects on fresh, mechanical, durability, and shrinkage properties of concrete were studied. The study focused on resolving two issues associated with fine aggregate replacement based on Bentz equation. To identify the most effective LWFA dosage for shrinkage reduction, different replacement rates of fine aggregates (50%, 100%, 125%, 150% and 175%) were adopted to account for the moisture loss during construction and drying period. Aggregate blends of internally cured mixes were also optimized to account for the disturbed aggregate gradations due to the introduced LWFA. Overall performance of internally cured concrete mixes with both non-optimized and optimized gradations were evaluated. The research demonstrated that effective internal curing concrete can be achieved with the optimized aggregate gradation.

Optimization of Aggregate Gradation Combinations to Improve Concrete Sustainability

Optimization of Aggregate Gradation Combinations to Improve Concrete Sustainability PDF Author: Majella Anson-Cartwright
Publisher:
ISBN: 9780494764121
Category :
Languages : en
Pages : 574

Book Description
By optimizing the packing of the combined aggregate gradations, the cement paste content needed to make concrete can be reduced, improving sustainability, cost, performance, durability, and workability. Optimization can be achieved using theoretical and empirical techniques, or waste concrete material as an intermediate size fraction. However, the potential for improvement is currently limited by prescriptive grading specifications that require meeting individual requirements for fine and coarse aggregates.From this study, using various optimization techniques, it was found that by inclusion of an intermediate sized aggregate material, a reduction in cement paste up to 16% is possible for 35 MPa and 50 MPa mix designs typically used in Ontario bridge decks. The aggregate materials used were a natural sand, and two crushed limestones of 19.0 mm and 6.7 mm maximum size. From these findings, recommendations are made for improving the current Ontario Provincial Standard Specification (OPSS) 1002 used for concrete aggregates.

An Improved Aggregate Gradation for Tennessee Portland Cement Concrete Bridge Deck Mixtures

An Improved Aggregate Gradation for Tennessee Portland Cement Concrete Bridge Deck Mixtures PDF Author: Barry Neal Whitten
Publisher:
ISBN:
Category : Aggregates (Building materials)
Languages : en
Pages : 204

Book Description


Development and Implementation of Lightweight Concrete Mixes for KDOT Bridge Applications

Development and Implementation of Lightweight Concrete Mixes for KDOT Bridge Applications PDF Author: Sarah Jo Grotheer
Publisher:
ISBN:
Category : Concrete bridges
Languages : en
Pages : 198

Book Description
As of 2005, 23% of the bridges in the Kansas infrastructure are classified as structurally deficient or functionally obsolete according to the ASCE Infrastructure Report Card (ASCE, 2008). One alternative to replacing the entire bridge structure is replacing only the superstructure with lightweight concrete. This option is more economical for city, county, and state governments alike. Replacing the superstructure with lightweight concrete can oftentimes allow the bridge rating to be upgraded to higher load capacities or higher traffic volumes. Furthermore, lightweight concrete can be used initially in a bridge deck to provide reduced weight and a lower modulus of elasticity, therefore lower cracking potential. The Kansas Department of Transportation is interested in the potential benefits of using lightweight aggregate concrete in Kansas bridge decks and prestressed bridge girders. This research project used three types of lightweight aggregate to develop lightweight concrete mixtures for a bridge deck and for prestressed bridge girders. Two of the lightweight aggregates were expanded shale obtained locally from the Buildex Company. One deposit was located in Marquette, Kansas, and the other in New Market, Missouri. The third lightweight aggregate source was expanded slate obtained from the Stalite Company in North Carolina. Aggregate properties including absorption, gradation, and L.A. Abrasion were evaluated. Over 150 lightweight concrete mixtures were created and tested and several mix design variables such as water-to-cement ratio, cement content, and coarse-to-fine aggregate ratio were evaluated. From these results, optimized bridge deck and optimized prestressed concrete mixtures were developed for each type of lightweight aggregate. Special concerns for lightweight aggregate concrete are addressed. These optimized concrete mixtures were then tested for KDOT acceptability standards for the concrete properties of compressive strength, tensile strength, modulus of elasticity, freeze-thaw resistance, permeability, alkali-silica reactivity, drying shrinkage, and autogenous shrinkage. All concrete mixtures performed satisfactorily according to KDOT standards. In addition, an internal curing effect due to the moisture content of the lightweight aggregate was observed during the autogenous shrinkage test.

Effect of Changes in Total Aggregate Gradation on Portland Cement Concrete Properties

Effect of Changes in Total Aggregate Gradation on Portland Cement Concrete Properties PDF Author: Steven M. Cramer
Publisher:
ISBN:
Category : Aggregates (Building materials)
Languages : en
Pages : 56

Book Description